Dividing Wall Column for Alpha-Methylstyrene and Cumene Distillation
Methods and systems for fractionating a crude alpha-methylstyrene (AMS) feed using one or more dividing wall columns are provided. The method can include introducing a crude AMS to a fractionation column, wherein the fractionation column contains a dividing wall disposed at least partially within the fractionation column such that an internal volume of the fractionation column is divided into at least a pre-fractionation section and a main fractionation section. The crude AMS can be introduced to the pre-fractionation section of the fractionation column. A light hydrocarbon can be withdrawn from the fractionation column at or proximal a first end thereof, a side-stream can be withdrawn from the main fractionation section of the fractionation column, and a heavy hydrocarbon can be withdrawn from the fractionation column at or proximal the second end thereof.
1 . A method for fractionating alpha-methylstyrene (AMS), comprising:
introducing a crude AMS to a fractionation column, wherein the fractionation column comprises a dividing wall disposed at least partially within the fractionation column such that an internal volume of the fractionation column is divided into at least a pre-fractionation section and a main fractionation section, the pre-fractionation section and the main fractionation section being in fluid communication with one another via a rectification section defined between a first end of the fractionation column and a first end of the dividing wall, a stripping section defined between a second end of the fractionation column and a second end of the dividing wall, or both, and wherein the crude AMS is introduced to the pre-fractionation section of the fractionation column;
withdrawing a light hydrocarbon from the fractionation column at or proximal the first end thereof;
withdrawing a side-stream from the main fractionation section of the fractionation column; and
withdrawing a heavy hydrocarbon from the fractionation column at or proximal the second end thereof.
2 . The method of claim 1 , wherein the side-stream comprises at least about 84 wt % cumene and at least about 13 wt % AMS.
3 . The method of claim 2 , wherein the side-stream further comprises less than about 1 wt % of total light components having a boiling point less than cumene and AMS, and less than about 1.5 wt % of total heavy components having a boiling point greater than cumene and AMS.
4 . The method of claim 3 , wherein the total light components comprise water, acetone, methanol, ethylbenzene, n-propylbenzne, C9 alkanes, sec-butylbenzene, mesityl oxide, or any mixture thereof and the total heavy components comprise sechutylbenzene, tert-butylbenzene, 2-methylbenzofuran, heavy ketones, or any mixture thereof.
5 . The method of claim 1 , wherein the side-stream is at a temperature of about 140° C. to about 180° C. when withdrawn from the fractionation column.
6 . The method of claim 1 , wherein the crude AMS comprises about 75 wt % to about 90 wt % cumene and about 10 wt % to about 25 wt % AMS.
7 . The method of claim 6 , wherein the crude AMS further comprises about 0.5 wt % to about 1 wt % of total light components having a boiling point less than cumene and AMS and about 1 wt % to about 1.5 wt % of total heavy components having a boiling point greater than cumene and AMS.
8 . The method of claim 1 , further comprising:
directing a lighter portion of the crude AMS toward the first end of the fractionation column within the pre-fractionation section;
directing a heavier portion of the crude AMS toward the second end of the fractionation column within in the pre-fractionation section; and
directing at least some of the lighter portion, the heavier portion, or both from the pre-fractionation section past the dividing wall and into the main fractionation section of the fractionation column.
9 . A method for fractionating alpha-methylstyrene (AMS), comprising:
introducing a crude AMS to a pre-fractionation section defined in a fractionation column;
directing a lighter portion of the crude AMS toward a first end of the pre-fractionation section;
directing a heavier portion of the crude AMS toward a second end of the pre-fractionation section; directing at least some of the lighter portion, the heavier portion, or both from the pre-fractionation section past a dividing wall disposed within the fractionation column and into a main fractionation section of the fractionation column; and
recovering a side-stream via a line fluidly coupled to the main fractionation section between a first end and a second end of the fractionation column.
10 . The method of claim 9 , wherein the side-stream comprises at least about 82 wt % cumene and at least about 12 wt % AMS.
11 . The method of claim 9 , wherein the side-stream comprises at least about 85 wt % cumene and at least about 14 wt % AMS.
12 . The method of claim 11 , wherein the side-stream further comprises less than about 0.1 wt % of total light components having a boiling point less than cumene and AMS, and less than about 0.15 wt % of total heavy components having a boiling point greater than cumene and AMS.
13 . The method of claim 12 , wherein the total light components comprise water, acetone, methanol, ethylbenzene, n-propylbenzne, C9 alkanes, sec-butylbenzene, mesityl oxide, or any mixture thereof and the total heavy components comprise sec-butylbenzene, tert-butylbenzene, 2-methylbenzofuran, heavy ketones, or any mixture thereof.
14 . The method of claim 9 , wherein the side-stream feed is at a temperature of about 140° C. to about 180° C. when recovered from the fractionation column.
15 . A system for fractionating alpha-methylstyrene (AMS), comprising:
a fractionation column; and
a dividing wall disposed at least partially within the fractionation column such that an internal volume of the fractionation column is divided into at least a pre-fractionation section and a main fractionation section, the pre-fractionation section and the main fractionation section being in fluid communication with one another via a rectification section defined between a first end of the fractionation column and a first end of the dividing wall, a stripping section defined between a second end of the fractionation column and a second end of the dividing wall, or both;
an input line fluidly coupled to the fractionation column and configured to direct a crude AMS to the pre-fractionation section;
a light hydrocarbon recovery line fluidly coupled to the fractionation column at or proximal the first end thereof and configured to recover a light hydrocarbon therefrom;
a side-stream recovery line fluidly coupled to the fractionation column and configured to recover a cumene/AMS feed from the main fractionation section; and
a heavy hydrocarbon removal line fluidly coupled to the fractionation column at or proximal the second end thereof and configured to remove a heavy hydrocarbon therefrom.
16 . The system of claim 15 , wherein the input line is fluidly coupled to an acetone fractionation unit.
17 . The system of claim 15 , wherein the input line is fluidly coupled to a dephenolation unit.
18 . The system of claim 15 , wherein the side-stream recovery line is fluidly coupled to a hydrogenation unit.
19 . The system of claim 15 , wherein the rectification section is configured to receive a first portion of the crude AMS from the pre-fractionation section, direct a lighter first portion thereof to the light hydrocarbon recovery line and direct a denser first portion thereof to the main fractionation section, and wherein the stripping section is configured to receive a second portion of the crude AMS from the pre-fractionation section, direct a second lighter portion thereof to the main fractionation section, and direct a second heavier portion to the heavy hydrocarbon removal line.
20 . The system of claim 15 , further comprising:
an oxidation unit configured to receive an oxidant and cumene and to produce an oxidized product comprising cumene hydroperoxide (CHP);
a cleavage unit configured to receive the oxidized product and an acid and to produce a crude product;
a neutralization unit configured to receive the crude product from the cleavage unit and a salt and to produce a neutralized crude product feed;
an acetone distillation unit configured to recover acetone from the neutralized crude product to produce an acetone distillation bottoms and the crude AMS;
an AMS hydrogenation unit configured to receive the cumene/AMS feed via the side-stream recovery line and hydrogen to produce a cumene; and
a recycle line configured to recycle at least a portion of the cumene back to the oxidation unit.